Technical Papers
Mar 23, 2017

Use of Near-Field Microwave Reflectometry to Evaluate Steel Fiber Distribution in Cement-Based Mortars

Publication: Journal of Materials in Civil Engineering
Volume 29, Issue 7

Abstract

Nonuniform distribution of fibers in steel fiber-reinforced cement-based materials can lead to heterogeneous hardened properties directly impacting mechanical properties. Given the highly conductive and strong scattering characteristics of steel fibers at microwave frequencies, near-field microwave reflectometry can offer an effective and robust methodology for evaluating steel fiber content and distribution in these materials. This paper evaluates the steel fiber distribution in fiber-reinforced cement-based mortar (FRCM) using near-field microwave reflectometry. The statistical properties of the microwave reflection experiments conducted at 3 and 10 GHz were correlated with fiber content and distribution in FRCM samples made with various fiber contents ranging from 0 to 3%. Image analysis techniques were also implemented to assess fiber distribution on cut surfaces at different thicknesses. The results of the microwave reflection properties are found to correlate well with fiber density determined from image analysis on hardened samples and fiber homogeneity obtained from freshly cast prism samples. A 3D microwave image of sample with 3% fiber content exhibited relatively high nonuniform image intensity.

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Acknowledgments

The authors would like to gratefully acknowledge the initial assistance of Mr. Benjamin Conley for performing some preliminary electromagnetic modeling.

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Go to Journal of Materials in Civil Engineering
Journal of Materials in Civil Engineering
Volume 29Issue 7July 2017

History

Received: Jun 14, 2016
Accepted: Oct 10, 2016
Published online: Mar 23, 2017
Published in print: Jul 1, 2017
Discussion open until: Aug 23, 2017

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Authors

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Iman Mehdipour, S.M.ASCE [email protected]
Research Assistant, Center for Infrastructure Engineering Studies, Dept. of Civil, Architectural and Environmental Engineering, Missouri Univ. of Science and Technology, 204 Engineering Research Laboratory, 500 W. 16th St., Rolla, MO 65409 (corresponding author). Email: [email protected]
Matthew Horst [email protected]
Research Assistant, Applied Microwave Nondestructive Testing Laboratory, Dept. of Electrical and Computer Engineering, Missouri Univ. of Science and Technology, 203 Engineering Research Laboratory, 500 W. 16th St., Rolla, MO 65409. Email: [email protected]
Reza Zoughi [email protected]
Professor, Applied Microwave Nondestructive Testing Laboratory, Dept. of Electrical and Computer Engineering, Missouri Univ. of Science and Technology, 224 Emerson Electric Company Hall, 301 W. 16th St., Rolla, MO 65409. Email: [email protected]
Kamal H. Khayat [email protected]
P.Eng.
Professor, Center for Infrastructure Engineering Studies, Dept. of Civil, Architectural and Environmental Engineering, Missouri Univ. of Science and Technology, 224 Engineering Research Laboratory, 500 W. 16th St., Rolla, MO 65409. Email: [email protected]

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